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基于高斯函数的碳离子治疗通量剂量计算方法。

Use of Gaussian-type functions for flux-based dose calculations in carbon ion therapy.

机构信息

Department of Physics, Faculty of Arts and Sciences, Mustafa Kemal University, 31034, Hatay, Turkey.

出版信息

Radiat Environ Biophys. 2020 Aug;59(3):511-522. doi: 10.1007/s00411-020-00856-9. Epub 2020 Jun 19.

Abstract

In radiation therapy, it is very important to ensure that the radiation dose is correctly delivered to the patient. This is achieved by obtaining quantitative dose measurements for beam calibration in the treatment planning system. Dose calculations should be performed with the required accuracy to a degree of uncertainty of less than 1%. The measurement of the absorbed dose in and around body tissues irradiated with carbon ions requires careful use of materials selected from established phantom and radiation detectors. The main advantage of such materials is that when information on the energy and nature of charged particles at the desired point is incomplete or inaccurate, they can allow determination of the absorbed dose. In general, radiation interactions in a tissue representation caused by carbon ions can be characterized by calculating the linear stopping power. Carbon ions have a limited penetration depth within human tissues that depends on the energy and stopping power of these ions as they penetrate into the body. The purpose of the present study was to calculate the stopping power, range and dose to intestinal and prostate tissues of carbon ions. The stopping power values of these tissues were specified by the effective charge approach method. The 5ZaPa-NR-CV, pcemd-4 and pcSseg-4 sets of Gaussian-type functions were employed for the calculation of electronic charge density. Range calculations were made by means of the Gaussian quadrature method, making use of the continuous slowing down approximation. Flux-based dose calculations were also carried out in accordance with the Bragg-Gray theorem using the Geant4 and FLUKA simulation toolkits. The results were compared with each other and with the SRIM and CasP datasets. Then, depth-dose distributions and range values were verified by positron emission activity using the GATE toolkit. Among the different types of Gaussian functions used here, the best semi-analytical result was found for the 5ZaPa-NR-CV set. The results obtained in the present study can be used for dose verification and dose reconstruction in charged particle radiotherapy and for radiation research on the interaction of radiation with matter. The results calculated here will be useful for quantifying uncertainties associated with stopping power, range, and reconstruction of dose in charged particle therapy.

摘要

在放射治疗中,确保辐射剂量正确地输送给患者是非常重要的。这可以通过在治疗计划系统中对光束进行定量剂量测量来实现。剂量计算应该以不超过 1%的不确定度精度来进行。在使用选定的材料进行碳离子辐照的体组织内和周围剂量测量时,需要小心使用。这些材料的主要优点是,当所需点处的带电粒子的能量和性质的信息不完整或不准确时,它们可以确定吸收剂量。一般来说,可以通过计算线性能量传递来描述碳离子在组织中的辐射相互作用。碳离子在人体组织中的穿透深度有限,这取决于这些离子进入人体时的能量和停止能力。本研究的目的是计算碳离子对肠和前列腺组织的阻止能力、射程和剂量。这些组织的阻止能力值是通过有效电荷方法指定的。使用 5ZaPa-NR-CV、pcemd-4 和 pcSseg-4 套高斯型函数来计算电子电荷密度。射程计算是通过高斯求积法,利用连续慢化近似法进行的。通量剂量计算也是根据布拉格-格雷定理使用 Geant4 和 FLUKA 模拟工具包进行的。将结果相互比较,并与 SRIM 和 CasP 数据集进行比较。然后,使用 GATE 工具包通过正电子发射活性验证深度剂量分布和射程值。在使用的不同类型的高斯函数中,发现 5ZaPa-NR-CV 集具有最佳的半解析结果。本研究获得的结果可用于带电粒子放射治疗中的剂量验证和剂量重建,以及辐射与物质相互作用的辐射研究。这里计算的结果将有助于量化与阻止能力、射程和带电粒子治疗中的剂量重建相关的不确定性。

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